Electric Field Controlled Flow Behaviour of Electrorheological Fluid

Electric Field Controlled Flow Behaviour of Electrorheological Fluid

Ŕ periodica polytechnica Electric field controlled flow behaviour Chemical Engineering of electrorheological fluid 52/1 (2008) 3–6 doi: 10.3311/pp.ch.2008-1.01 Árpád Forberger / Genovéva Filipcsei / Gábor Stépán / Miklós Zrínyi web: http://www.pp.bme.hu/ch c Periodica Polytechnica 2008 RESEARCH ARTICLE Received 2005-10-13 Abstract 1 Introduction The main purpose of the present study is to demonstrate the Rheological properties of materials are related to their re- electric field controlled flow behaviour of electrorheological sponse to applied stress. The field induced chain formation (ER) fluid. We have investigated the relation between the elec- of a large number of organic and inorganic substances such tric field and the change in the viscosity of electrorheological as starch, aluminium oxide, ferric oxide, carbon black, ion- fluids. Different kinds of suspensions are used to search for the exchange resins, and polymer powders have been studied mainly proper combination ER fluid for applying in a motor mount. A in insulating oils. rotational viscometer is used to get how the viscosity depends on Electrostatic spray painting is widely used in order to enhance temperature and a special device to measure the effect of electric the paint transfer efficiency. It is based on strong Coulombic 1 fields up to 1.8 kVmm− . interactions between paint particles and surface to be coated. An electrostatic field is created and as a result, the paint parti- Keywords cles pick up electrons and become ionised. The grounded work electrorheology dielectrophoresis polymer dispersions piece attracts the negatively charged paint particles and thus the · · · viscosity transfer efficiency is increased significantly. Another electro- static effect is based on the polarisation of dispersed particles Acknowledgement in electric field. Small particles in the size range from about This research was supported by the Intel KKK (GVOP-3.2.2- one-micron up to one millimetre dispersed in non-conducting 2004-07-0006/3.0) and NKFP-3A/081/04. medium, mainly in organic solvents, can respond to an applied electric field by rapidly changing their apparent viscosity. Such a colloidal solution is called electrorheological fluid and the in- teraction with the field is often designated as dielectrophoresis. The dielectrophoresis refers to the force exerted on the induced dipole moment of an uncharged particle by nonuniform electric field. The polarised particles interact not only with the imposed field, but also with each other. At close spacing these interac- tion forces can be quite strong. The particles attract each other when aligned parallel to the applied field, or repel each other when in perpendicular alignment. The attractive forces between Árpád Forberger particles lead to chain formation. The pearl chain structuring Department of Physical Chemistry and Materials Science, BME, H–1521, Bu- dapest, Hungary makes possible far implication in particulate science. The field induced chain formations of a large number of organic and inor- Genovéva Filipcsei ganic substances such as starch, aluminium oxide, ferric oxide, Materials Structure and Modelling Research Group of the Hungarian Academy of Sciences, MTA-BME Laboratory of Soft Matters„ H–1521, Budapest, Hun- carbon black, ion-exchange resins, and polymer powders have gary been studied mainly in insulating oils. Much less is studied and understood the electrorheological Gábor Stépán Department of Applied Mechanics, BME, H–1521, Budapest, Hungary effect of pigments in polymer dispersions. Titanium dioxide is one of the most frequently used surface coatings due to its high- Miklós Zrínyi quality and ecologically acceptable properties. In the present Department of Physical Chemistry and Materials Science, BME, H–1521, Bu- dapest, Hungary paper the authors first review the basic principle of electrorheol- Electric field controlled flow behaviour of electrorheological fluid 2008 52 1 3 ogy, this is followed by experimental studies on structuring and directed along the gradient of the square of electric field inten- rheological properties. sity, which in general, is not parallel to the electric field vector E. It is also seen that fDEP depends on the sign and magnitude 2 Electrorheological effects of the Clausius-Mossotti function. In case of K > 0 the col- The terms of electrophoresis and dielectrophoresis imply the loidal particles are attracted to electric field intensity maxima interplay between electrical phenomena and motion. Dielec- and repelled from minima. The field direction does not play any trophoresis is the translational motion of neutral particles in role. nonuniform electric field due to polarisation. Although polar- In uniform fields the situation is completely different. Due isation effects are often considered to be weak, there are sev- to the lack of field gradient, there are no attractive or repulsive eral examples where they are far more effective than Coulomb field-particle interactions. The particle-particle interaction be- forces, since polarisation forces can act directly on an uncharged comes dominant. The imposed field induces electric dipoles. As particle. Electrorheology is based on dielectrophoretic effects. a result, mutual particle interactions occur if the particles are so All materials experience forces or torques when subjected to closely spaced that the local field can influence their neighbours. electric field. These interactions are strong in the case of cer- This mutual interaction can be very strong leading to significant tain solid materials, but rather weak in fluid systems. In order change in the structure of particle ensembles. The particles at- to enhance the influence of the external fields on the fluid-like tract each other when aligned end to end, and repel each other properties, it is necessary to combine solid like and fluid like be- in side by side situation. Due to the attractive forces pearl chain haviours. Since polymer dispersions contain substantial amount structure may develop. This field-induced chaining has been of liquid, it is possible to fabricate a field sensitive fluid, the so- found to influence the value of viscosity and yield stress. In called complex fluid. A complex fluid contains dispersed small nonuniform fields both phenomena, the dielectrophoretic force particles in the size range of nanometres to micrometers [1]. Re- as well as the structure formation occurs. sponding to an applied field the particles in the fluid couple the Electrorheological fluids are suspensions of polarisable solid viscosity, yield stress and other physical properties to the ex- particles in a fluid medium of low electrical conductivity. An terior. The response time can approach the order of millisec- electric field is applied to increase the resistance to flow and with ond [2]. If we incorporate polarisable colloidal particles into a the field it is totally controllable. Without the control field they polymer solution, due to an imposed electric field, the particles readopt their original rheological properties, such low viscosity. experience a dielectrophoretic force. Since the particles move These fluids can be used as fast reacting interfaces between con- together with the fluid all of the forces acting on the particles trol electronics and mechanical system in actuators, clutches, are transmitted directly to the polymer dispersion resulting in vibration dampers, motor mounts and valves in hydraulic sys- peculiar rheological behaviour. tems as well. There are several experiments available that dis- If an electrorheological fluid is exposed to an external field, cuss the rheological behaviour, properties and adaptability in ac- two distinct types of interaction can be identified: field-particle tive control applications of ER fluids. Still there are only a few interaction, as well as particle-particle interaction. If the field commercial applications. One is an MR damper developed by is nonuniform, then the field-particle interactions are dominant. GM. Mostly automotive adaptations are the research priorities, Particles experience a dielectrophoretic force, fDEP . As a re- in most cases reducing vibration, substituting moving-rotating sult, the particles are attracted to regions of stronger field inten- parts with ER fluids. In the late 1980s GM carried out a study sities [3]: on the application potential of ER fluids, and concluded that a 3 2 fDEP 2πε1 R K E (1) major hurdle was the low yield stress of the ER fluids. Several = ∇ benefits are known, so let us discuss some. First, after switching where ε1 denotes the dielectric permittivity of the solvent, R off the electric field the fluid shifts very fast, within a few mil- stands for the radius of colloidal particle. The symbol rep- ∇ liseconds, which is essential in active controls. And this process resents the gradient operator. The quantity K is known as is totally reversible. Today dampers in motor mounts are used al- the Clausius-Mossotti function that provides a measure of the ways as passive suspension systems, so one cannot change their strength of the effective polarisation of the spherical particle properties (for example stiffness and damping). And here comes with a dielectric permittivity of ε2 : the benefits of ER fluids with their controllable viscosity and ε2 ε1 K (ε1, ε2) − (2) damping ratio. = ε2 2ε1 + Eq. 1 reveals the most important feature of electrophoretic ef- 3 Experiments fects. It says that the electrophoretic force is proportional to the 3.1 Preparation of the ER fluid particle volume of the individual particles dispersed in the liq- The model system of our studies was based on the dispersion uid. fDEP is also proportional to the dielectric permittivity of of electric field sensitive powder mixture containing mostly Ba, the medium in which the colloidal particles are suspended. It La, Y, Ce in silicon oil. The average particle size is 60 µm. The is important to mention that the dielectrophoretic force vector is silicon oil (DC200) was obtained from Fluka. The viscosity of 4 Per. Pol. Chem. Eng. Árpád Forberger / Genovéva Filipcsei / Gábor Stépán / Miklós Zrínyi the silicon oil was 1 and 2 Pas at 25 0C. The concentration of the ER suspension was varied in a wide range from 30 up to 50 w%.

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